Claims
- 1. A non-metallic nozzle for a fluid dispensing device comprising:a heat softenable non-metallic tube defining an ink passageway having an axis of symmetry, said tube comprising: an annular passage portion having a first predetermined outer diameter and a first predetermined inner diameter; and an annular orifice portion having a second predetermined outer diameter and a second predetermined inner diameter, said first inner diameter converging to an orifice in the orifice portion having said second inner diameter of less than or about 30 microns at an angle of convergence between 5 and 25 degrees with said axis of symmetry, wherein the second outer diameter is at least as great as the first outer diameter.
- 2. The nozzle of claim 1, wherein said orifice has an axis of symmetry collinear with said axis of symmetry of said tube.
- 3. The nozzle of claim 1, wherein said heat softenable tube comprises glass.
- 4. The nozzle of claim 3, wherein said glass tube comprises fused silica having a melting temperature of approximately 1,600° C.
- 5. The nozzle of claim 3, wherein a portion of said glass tube is covered with a layer of plastic.
- 6. The nozzle of claim 1, wherein said second outer diameter is 2.5% to 9% larger than said first outer diameter proximate said orifice.
- 7. A nozzle according to claim 1, and wherein said ink passageway is narrowest at a downstream end thereof.
- 8. The nozzle of claim 1, wherein said nozzle is used solely for ink-jet printers.
- 9. A method of producing the nozzle of claim 1, including the steps of:providing a heat source; rotating said tube relative to said heat source; and heating said tube to a state of reduced viscosity, causing said first inner diameter to converge to less than said second inner diameter without applying an axial force to said tube, said first inner diameter converging to said second inner diameter at an angle between 5 and 25 degrees with respect to said axis of symmetry.
- 10. The nozzle of claim 9, wherein said heat source is an electric arc.
- 11. The nozzle of claim 9, wherein a length of said tube is removed along said converging inner diameter to define said orifice having a diameter less than or about 30 microns.
- 12. The nozzle of claim 11, wherein said length of tube is removed by grinding.
- 13. An ink-jet printing process, comprising the steps of:providing a computer system capable of generating color raster image data and print command signals; providing a printhead responsive to said computer system, said printhead including, a plurality of nozzles, each said nozzle having, a heat softenable tube defining an ink passageway having an axis of symmetry, a first outer diameter, and a first inner diameter; said first inner diameter converging to an orifice having a second inner diameter of less than or about 30 microns at an angle of convergence between 5 and 25 degrees with said axis of symmetry; and a second outer diameter that is larger than said first outer diameter proximate said orifice; a plurality of piezo-electric crystals, one said piezo-electric crystal associated with each nozzle for mechanically stimulating said nozzle; a plurality of electrodes, one said electrode associated with each said nozzle for imparting an electric charge to droplets of ink jetted from said nozzle; a deflection assembly including a chargeable deflector for attracting and deflecting charged ink droplets; providing ink to said plurality of nozzles; and depositing ink droplets from said printhead in accordance with said color raster image data in each of a plurality of pixels, thereby forming an image.
- 14. An ink-jet printing process, comprising the steps of:A. providing a computer system capable of generating color raster image data and print command signals; B. providing a printhead responsive to said computer system, said printhead including: a plurality of nozzles, each nozzle having: a heat softenable, non-metallic tube defining an ink passageway having an axis of symmetry, said tube comprising: an annular passage portion having a first outer diameter and a first inner diameter, and an annular orifice portion having a second outer diameter and a second inner diameter; said first inner diameter converging to an orifice in the orifice portion having said second inner diameter of less than or about 30 microns at an angle of convergence between 5 and 25 degrees with said axis of symmetry, wherein the second outer diameter is at least as great as the first outer diameter; a plurality of piezo-electric crystals, one said piezo-electric crystal associated with each said nozzle for mechanically stimulating said nozzle; a deflection assembly including a chargeable deflector for attracting and deflecting charged ink droplets; C. providing ink to said plurality of nozzles; and D. depositing ink droplets from said printhead in accordance with said color raster image data in each of a plurality of pixels, thereby forming an image.
- 15. An ink-jet printing process, comprising the steps of:providing ink to a nozzle including a constriction narrowing to a cross-sectional area of less than or about 30 microns at an angle of convergence between 5 and 25 degrees; deflecting said ink in accordance with data to provide an interrupted stream; directing said stream toward a print medium; and scanning said stream across said print medium to provide a two dimensional ink-jet image, wherein the nozzle comprises: a heat softenable tube defining an ink passageway having an axis of symmetry, a first outer diameter, and a first inner diameter; said first inner diameter converging to an orifice having a second inner diameter of less than or about 30 microns at an angle of convergence between 5 and 25 degrees with said axis of symmetry; and a second outer diameter that is larger than said first outer diameter proximate said orifice.
- 16. A non-metallic nozzle for a fluid dispensing device comprising:a heat softenable, non-metallic tube defining an ink passageway having an axis of symmetry, said tube comprising: an annular passage portion having a first outer diameter and a first inner diameter, and an annular orifice portion having a second outer diameter and a second inner diameter, said first inner diameter converging to an orifice in the orifice portion having said second inner diameter of less than or about 30 microns at an angle of convergence between 5 and 25 degrees with said axis of symmetry, wherein said second outer diameter is at least 90 percent of the first outer diameter.
RELATED APPLICATIONS
This application is a continuation of prior application Ser. No. 08/370,642, filed Jan. 10, 1995 now abandoned, which is a continuation-in-part of application Ser. No. 08/116,980 filed Sep. 10, 1993, now U.S. Pat. 5,407,136, which is a continuation-in-part of application Ser. No. 07/947,278 filed Sep. 18, 1992, now abandoned.
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0097413 |
Jan 1984 |
EP |
WO 9014956 |
Dec 1990 |
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Non-Patent Literature Citations (5)
Entry |
Anil K. Jain, “A Fast Two Dimensional Median Filtering”, Digital Image Processing, Published by Prentice Hall**. |
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Continuations (1)
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Number |
Date |
Country |
Parent |
08/370642 |
Jan 1995 |
US |
Child |
09/290527 |
|
US |
Continuation in Parts (2)
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Number |
Date |
Country |
Parent |
08/116980 |
Sep 1993 |
US |
Child |
08/370642 |
|
US |
Parent |
07/947278 |
Sep 1992 |
US |
Child |
08/116980 |
|
US |